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一种具有巨型变形虫网柄菌细胞器运动蛋白预期特性的ATP酶。

An ATPase with properties expected for the organelle motor of the giant amoeba, Reticulomyxa.

作者信息

Euteneuer U, Koonce M P, Pfister K K, Schliwa M

机构信息

Deparment of Zoology, University of California, Berkeley 94720.

出版信息

Nature. 1988 Mar 10;332(6160):176-8. doi: 10.1038/332176a0.

Abstract

The rapid, vectorial, microtubule-associated transport of organelles is believed to be mediated by specific mechanochemical transducers. Recent studies of various metazoan cells have allowed the identification of novel microtubule-dependent translocator molecules capable of promoting microtubule gliding across glass surfaces and translocation of inert beads along microtubules. These translocators could be involved in force generation for directional organelle movements in vivo. Here we report the identification of a microtubule-binding protein with characteristics expected for an organelle translocator in the giant freshwater amoeba Reticulomyxa. This factor has an apparent relative molecular mass (Mr) of 440,000 (440K) and sediments at 20-22S in sucrose-density gradients. It binds to microtubules under conditions of ATP depletion, possesses an ATPase activity and is sensitive to ultraviolet-induced, vanadate-dependent cleavage. Although its pharmacological properties differ from those of axonemal dynein, it can be considered to be a variant of cytoplasmic dynein. The Reticulomyxa high-molecular-weight protein (HMWP) promotes rapid, bidirectional movement of latex beads along Reticulomyxa microtubules in vitro at an average speed of 3.6 micron s-1. This protein, therefore, is a likely candidate for a microtubule-dependent motor.

摘要

细胞器的快速、矢量性、与微管相关的运输被认为是由特定的机械化学转导器介导的。最近对各种后生动物细胞的研究使得能够鉴定出新型的微管依赖性转运分子,这些分子能够促进微管在玻璃表面滑动以及惰性珠子沿着微管移位。这些转运体可能参与了体内细胞器定向运动的力的产生。在此,我们报告在大型淡水变形虫网柱黏菌中鉴定出一种具有细胞器转运体预期特征的微管结合蛋白。该因子的表观相对分子质量(Mr)为440,000(440K),在蔗糖密度梯度中沉降系数为20 - 22S。它在ATP耗尽的条件下与微管结合,具有ATP酶活性,并且对紫外线诱导的、钒酸盐依赖性切割敏感。尽管其药理学特性与轴丝动力蛋白不同,但可以认为它是胞质动力蛋白的一种变体。网柱黏菌高分子量蛋白(HMWP)在体外以平均3.6微米/秒的速度促进乳胶珠子沿着网柱黏菌微管快速双向移动。因此,这种蛋白很可能是微管依赖性马达的候选者。

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